DFT exploration of novel direct band gap semiconducting halide double perovskites, A2AgIrCl6 (A = Cs, Rb, K), for solar cells application
M. A. Rayhan, M. M. Hossain, M. M. Uddin, S. H. Naqib, M. A Ali

TL;DR
This study uses density functional theory to explore the properties of novel A2AgIrCl6 double perovskites, revealing their potential as efficient, stable, direct band gap semiconductors for solar cell applications.
Contribution
First comprehensive DFT analysis of A2AgIrCl6 double perovskites, confirming their stability and promising optoelectronic properties for renewable energy devices.
Findings
Exhibit direct band gaps of 1.43-1.55 eV suitable for solar absorption
Show low reflectivity and high light absorption coefficients
Demonstrate mechanical and thermodynamic stability
Abstract
Double perovskite halides are promising materials for renewable energy production, meeting the criteria to address energy scarcity issues. As a result, studying these halides could be useful for optoelectronic and solar cell applications. In this study, we investigated the structural, mechanical, thermodynamic, electronic, and optical properties of A2AgIrCl6 (A = Cs, Rb, K) double perovskite halides using density functional theory calculations with the full-potential linearized augmented plane-wave (FP-LAPW) approach, aiming to evaluate their suitability for renewable energy devices. The Goldsmith tolerance factor, octahedral factor, and new tolerance factor have confirmed the cubic stability of the predicted compounds. We have also verified the thermodynamic stability of these compounds by calculating the formation enthalpy, binding energy, and phonon dispersion curves. Additionally,…
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Taxonomy
TopicsPerovskite Materials and Applications · Solid-state spectroscopy and crystallography · Crystal Structures and Properties
